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Titlebook: Biomimicked Biomaterials; Advances in Tissue E Heung Jae Chun,Rui L. Reis,Gilson Khang Book 2020 The Editor(s) (if applicable) and The Auth

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Design of Advanced Polymeric Hydrogels for Tissue Regenerative Medicine: Oxygen-Controllable Hydrogeuch as a lack of oxygen (defined as hypoxia) and an excess supply of oxygen (defined as hyperoxia) plays a pivotal role during early vascular development, tissue regeneration and repair, and tumor progression and metastasis. In this chapter, we discuss how engineered polymeric hydrogels serve as eit
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The Development of Extracellular Vesicle-Integrated Biomaterials for Bone Regenerationnce the behavior of recipient cells make EVs an interesting source for both diagnostic and therapeutic applications. Advancement of knowledge in the fields of immunology and cell biology has sparked the exploration of the potential of EVs in the field of regenerative medicine. EVs travel between cel
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Surface-Modifying Polymers for Blood-Contacting Polymeric Biomaterialshe surface-modified materials is usually investigated by analytical tools such as contact angle measurement, atomic force microscopy (AFM), and X-ray photoelectron spectroscopy (XPS). Blood compatibility is mainly evaluated via platelet adhesion and protein adsorption test, and the result showed a s
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https://doi.org/10.1007/978-3-322-96634-6 required. Therefore, in this review, we have dealt with the use of duck’s feet-derived collagen (DC) as an emerging alternative to solve this problem and also presenting few original investigated bone regeneration results performed using DC.
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Anwendungen der Laplace-Transformation,tion of GG with DBP in different combinations was reviewed, and the best suitable combinations were selected and further studied in small animal models for the soft and hard tissue engineering applications; also its application in the osteochondral integration fields were briefly discussed.
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